Steel wire rope laser measurement rotary cutter

Through the automated design of laser measurement and rotary cutting machine, the problem of low cutting accuracy of traditional wire ropes is solved, efficient and accurate wire rope cutting is achieved, and production efficiency and product quality are improved.

CN223129214UActive Publication Date: 2025-07-22LAND AMERICA HEALTH & FITNESS
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Patent Information

Application Number
CN202422178075.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-05
Publication Date
2025-07-22
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The traditional wire rope fixed-distance cutting method is complicated to operate and has low accuracy, resulting in low production efficiency, high waste and high costs.

Method used

A laser measuring and cutting machine is used to realize automated and high-precision wire rope distance cutting through the combination of material discharge, compression, movement, laser measurement and rotary cutting mechanism, and the laser measuring mechanism is used to measure the length of the wire rope in real time and trigger the rotary cutting action.

Benefits of technology

It realizes high-precision and high-speed cutting of steel wire ropes, reduces waste, improves production efficiency and product consistency, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a steel wire rope laser measurement rotary cutter which comprises a machine frame, and a discharging mechanism, a first pressing mechanism, a moving mechanism, a laser measurement mechanism, a second pressing mechanism and a rotary cutting mechanism are sequentially arranged on the machine frame from the discharging end to the receiving end of the machine frame. The controller is electrically connected with the moving mechanism, the laser measuring mechanism and the rotary cutting mechanism and performs signal transmission with the moving mechanism, the laser measuring mechanism and the rotary cutting mechanism; the laser measuring mechanism is used for measuring the length of the steel wire rope; the rotary cutting mechanism comprises a fixed tool apron and a rotary tool bit, the corresponding faces of the fixed tool apron and the rotary tool bit are shearing faces, the second pressing mechanism is located above the tool apron and used for pressing the steel wire rope on the tool apron, and the tool bit rotates to coincide with the tool apron, so that shearing force is formed, and the steel wire rope is cut off. After the laser measuring mechanism detects that the steel wire rope reaches the preset length, information is transmitted to the controller, the controller controls the tool bit to conduct rotary cutting action, and after one-time cutting is completed, the tool bit resets to wait for the next-time cutting action.
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Description

Technical Field

[0001] The utility model relates to the technical field of steel wire rope slitting, in particular to a steel wire rope laser measuring rotary cutting machine. Background Art

[0002] In the field of wire rope processing and manufacturing, accurate and efficient fixed-distance cutting is the key to ensuring product quality and production efficiency. There are generally two ways to cut the distance of traditional wire ropes.

[0003] The first method is to obtain the required length by manual measurement and then cutting with a discharge pliers. This method is not only cumbersome and time-consuming, but also difficult to ensure cutting accuracy.

[0004] The other method is to roughly estimate the required length based on personal experience and then cut the wire rope to a unit length. This cutting method has a large uncertainty. If the wire rope is cut too long or too short, it will complicate the subsequent processing. A wire rope that is too long needs to be cut again, which will generate unnecessary waste and increase production costs. A wire rope that is too short cannot be used and requires additional connection processing, which not only increases production time, but also consumes additional connection devices, making the entire production process more time-consuming and labor-intensive. Utility Model Content

[0005] The utility model aims to provide a wire rope laser measuring rotary cutting machine, which can accurately and quickly cut the wire rope of required length, improve production efficiency and accuracy, reduce waste and save costs.

[0006] To achieve the above-mentioned purpose, the solution of the utility model is: a wire rope laser measuring peeling machine, comprising a frame, one end of the frame is a material discharge end, and the other end is a material receiving end, and the frame is provided with a material discharge mechanism, a first clamping mechanism, a moving mechanism, a laser measuring mechanism, a second clamping mechanism and a peeling mechanism in sequence from the material discharge end to the material receiving end; and also comprising a controller, which is electrically connected to the moving mechanism, the laser measuring mechanism and the peeling mechanism and performs signal transmission;

[0007] The steel wire rope on the unloading mechanism extends from the unloading end of the frame to the receiving end; the first pressing mechanism and the second pressing mechanism are used to press the steel wire rope, and the moving mechanism between the two is used to control the movement or stop of the steel wire rope; the laser measuring mechanism is used to measure the length of the steel wire rope; the rotary cutting mechanism includes a fixed knife seat and a rotating knife head, and the corresponding surfaces of the two are shearing surfaces. The second pressing mechanism is located above the knife seat and is used to press the steel wire rope on the knife seat. The knife head rotates to overlap with the knife seat to form a shearing force to cut the steel wire rope;

[0008] After the laser measurement mechanism detects that the steel wire rope reaches the preset length, it transmits the information to the controller. The controller controls the cutter head to perform a rotary cutting action. After one cutting is completed, the cutter head resets and waits for the next cutting action.

[0009] Further, the moving mechanism includes a driving wheel and a driven wheel. The driving wheel is arranged on the frame and is driven by a first motor to rotate. The driven wheel is located above the driving wheel, and their axes are parallel to each other and perpendicular to the moving direction of the steel wire rope. The driven wheel is driven by a first cylinder to move up and down to approach or move away from the driving wheel.

[0010] Further, the cutter head is connected with a driving mechanism, and the driving mechanism includes a motor and a set of 4:1 gear transmission sets.

[0011] Further, the second pressing mechanism includes a pressing block located above the tool holder and a second cylinder. The piston rod of the second cylinder drives the pressing block to move up and down to press or loosen the steel wire rope on the tool holder.

[0012] Further, a groove is formed on the upper surface of the tool holder along the path where the steel wire rope passes through, and the lower half of the steel wire rope is embedded in the groove.

[0013] Further, a guiding mechanism is arranged between the wire feeding mechanism and the first pressing mechanism. The guiding mechanism includes a vertical roller and a horizontal roller. The vertical roller and the horizontal roller are perpendicular and arranged in a staggered manner, and a wire guiding hole for the steel wire rope to pass through is formed therebetween.

[0014] Further, the wire feeding mechanism includes a wire reel and two rollers. Among them, the wire reel is used for installing the wire coil of the steel wire rope, and the two rollers are spaced on the frame to form a track for the wire reel to be carried. The two ends of the wire reel are carried on the rollers of the two rollers. Under the action of an external force, the wire reel rotates in place to release the steel wire rope thereon.

[0015] Further, a deceleration and buffering mechanism is further arranged at the wire feeding end of the frame. The deceleration and buffering mechanism includes a swing arm and a buffer wheel installed at the free end of the swing arm. The buffer wheel contacts the edge of the wire reel of the wire feeding mechanism.

[0016] Further, two balancing mechanisms are further included. The two balancing mechanisms are respectively located upstream and downstream of the moving mechanism. Each balancing mechanism includes a balancing seat and two balancing wheels. The balancing seat is fixed on the frame, the balancing wheels are rotatably arranged on the balancing seat, the axial direction of the balancing wheels is perpendicular to the moving direction of the steel wire rope, the two balancing wheels are arranged up and down, and a channel for the steel wire rope to pass through is formed between the two balancing wheels.

[0017] Furthermore, the first pressing mechanism includes a pressing seat, a pressing wheel, a pressing column and an elastic member. The pressing seat is fixed on the frame, the pressing wheel is rotatably arranged on the pressing seat, a pressing column is arranged above the pressing wheel, the steel wire rope passes between the pressing wheel and the pressing column, and under the action of the elastic member, the pressing column presses the steel wire rope against the surface of the pressing wheel.

[0018] After adopting the above scheme, the beneficial effects of the present utility model are as follows:

[0019] The steel wire rope laser measurement and cutting machine of the present utility model includes a feeding mechanism, a first pressing mechanism, a moving mechanism, a laser measurement mechanism, a second pressing mechanism and a cutting mechanism arranged in sequence, and also includes a controller. The above mechanisms constitute an automated, high-precision and high-efficiency steel wire rope fixed-distance cutting production line. Among them, the feeding mechanism is used for smooth feeding, and the pressing mechanism is used for pressing the steel wire rope. Cooperating with the moving mechanism, the steel wire rope on the production line is always in a tensioned state. A laser measurement mechanism is arranged upstream of the cutting station for real-time measurement of the length of the steel wire rope. Once this length reaches the preset target length value, the laser measurement mechanism will transmit this information as a trigger signal to the controller. After receiving this signal, the controller will immediately start the rotation of the tool head of the cutting mechanism to make it coincide with the fixed tool holder, forming sufficient shear force to cut the steel wire rope.

[0020] The laser measurement mechanism is used to accurately measure the length of the steel wire rope, ensuring that each cutting can reach the preset length, effectively avoiding the errors caused by traditional manual measurement or estimation, and significantly improving the consistency and quality stability of the product. Description of the Drawings

[0021] Figure 1 is a side view of the steel wire rope laser measurement and cutting machine according to an embodiment of the present utility model;

[0022] Figure 2 is a three-dimensional view of the steel wire rope laser measurement and cutting machine according to an embodiment of the present utility model;

[0023] Figure 3 is Figure 2 a partial enlarged view of part A in

[0024] Figure 4 is a three-dimensional view of the guiding mechanism and the first pressing mechanism according to an embodiment of the present utility model;

[0025] Figure 5 is a three-dimensional view of the moving mechanism and the balancing mechanism according to an embodiment of the present utility model;

[0026] Figure 6 is an exploded view of the cutting mechanism according to an embodiment of the present utility model;

[0027] Figure 7 is a three-dimensional view of the cutting mechanism according to an embodiment of the present utility model;

[0028] Figure 8 This is a perspective view of the deceleration and buffer mechanism according to an embodiment of the present utility model.

[0029] Label description:

[0030] 1. Frame;

[0031] 2. Feeding mechanism; 21. Material roller; 22. Roller shaft;

[0032] 3. Guiding mechanism; 31. Vertical roller; 32. Horizontal roller;

[0033] 4. First pressing mechanism; 41. Pressing seat; 42. Pressing wheel; 43. Pressing column; 44. Elastic member;

[0034] 5. Moving mechanism; 51. Driving wheel; 52. First motor; 53. Driven wheel; 54. First cylinder;

[0035] 6. Laser measurement mechanism;

[0036] 7. Rotary cutting mechanism; 71. Tool holder; 711. Groove; 72. First cutting blade; 73. Tool tip; 74. Second cutting blade; 75. Second motor; 76. Gear transmission group;

[0037] 8. Second pressing mechanism; 81. Pressing block; 82. Second cylinder;

[0038] 9. Balancing mechanism; 91. Balancing seat; 92. Balancing wheel;

[0039] 10. Deceleration and buffer mechanism; 101. Swing arm; 102. Buffer wheel; 103. Rotating seat;

[0040] 20. Steel wire rope. Detailed implementation manners

[0041] The following will describe the present utility model in detail with reference to the accompanying drawings and specific embodiments.

[0042] The present utility model provides a steel wire rope laser measurement rotary cutting machine, as Figures 1 to 8 described, including a frame 1. One end of the frame 1 is a feeding end, and the other end is a receiving end. The frame 1 is successively provided with a feeding mechanism 2, a first pressing mechanism 4, a moving mechanism 5, a laser measurement mechanism 6, a second pressing mechanism 8, and a rotary cutting mechanism 7 from its feeding end to the receiving end.

[0043] The steel wire rope 20 on the feeding mechanism 2 extends from the feeding end of the frame 1 through the above-mentioned mechanisms to the receiving end.

[0044] In this embodiment, as Figure 1 and Figure 2As shown, the feeding mechanism 2 includes a wire reel 21 and two rollers 22. Among them, the wire reel 21 is for installing the wire rope 20 reel. The two rollers 22 are spaced and mounted on the frame 1 to form a track for mounting the wire reel 21. The two ends of the wire reel 21 are mounted on the rollers of the two rollers 22. Under the action of an external force, the wire reel 21 can rotate in place to release the wire rope 20 thereon.

[0045] As Figure 2 and Figure 4 shown, a guiding mechanism 3 is provided between the feeding mechanism 2 and the first pressing mechanism 4. The guiding mechanism 3 includes two vertical rollers 31 and two horizontal rollers 32. The vertical rollers 31 and the horizontal rollers 32 are perpendicular and offset from each other, and a wire guiding hole for the wire rope 20 to pass through is formed therebetween. The wire rope 20 is released from the feeding mechanism 2, passes through this wire guiding hole, and then continues to extend to the downstream mechanism.

[0046] The first pressing mechanism 4 and the second pressing mechanism 8 are used to press the wire rope 20. As Figure 2 and Figure 4 shown, the first pressing mechanism 4 includes a pressing seat 41, a pressing wheel 42, a pressing column 43 and an elastic member 44. The pressing seat 41 is fixed on the frame 1. The pressing wheel 42 is rotatably arranged on the pressing seat 41, and a pressing column 43 is provided above the pressing wheel 42. When the wire rope 20 passes between the pressing wheel 42 and the pressing column 43, the acting force of the elastic member 44 makes the pressing column 43 closely adhere to the wire rope 20, effectively preventing the wire rope 20 from slipping or shaking that may occur during the transmission process.

[0047] A moving mechanism 5 is provided between the first pressing mechanism 4 and the second pressing mechanism 8. The moving mechanism 5 is used to control the movement or stop of the wire rope 20. As Figure 5 shown, the moving mechanism 5 includes a driving wheel 51 and a driven wheel 53. The driving wheel 51 is arranged on the frame 1 and is driven by a first motor 52 to rotate. The driven wheel 53 is located above the driving wheel 51 and is driven by a first cylinder 54 to move up and down to approach or move away from the driving wheel 51. The axes of the driving wheel 51 and the driven wheel 53 are parallel to each other and perpendicular to the moving direction of the wire rope 20. The wire rope 20 passes between the driving wheel 51 and the driven wheel 53. The driven wheel 53 is driven by the first cylinder 54 to move down to press the wire rope 20 against the surface of the driving wheel 51. At this time, the rotation or stop of the driving wheel 51 will be directly transmitted to the wire rope 20 through friction, thereby realizing the precise control of the movement or stop of the wire rope 20.

[0048] The wire rope laser measuring and cutting machine of the present utility model further includes two balancing mechanisms 9 for improving the smoothness of the wire rope 20 transmission. As Figure 2 and Figure 5As shown in the figure, two balancing mechanisms 9 are respectively located upstream and downstream of the moving mechanism 5. Each balancing mechanism 9 includes a balancing seat 91 and two balancing wheels 92. The balancing seat 91 is fixed on the frame 1, and the balancing wheels 92 are rotatably arranged on the balancing seat 91. The axial direction of the balancing wheels 92 is perpendicular to the moving direction of the steel wire rope 20. The two balancing wheels 92 are arranged vertically, and there is a channel for the steel wire rope 20 to pass between the two balancing wheels 92.

[0049] As Figure 1 and Figure 2 shown, the laser measurement mechanism 6 of the present utility model uses a laser speed and length measuring instrument, which can specifically be the SL mini-W and SLR mini-W series of miniature speed and length measuring instruments. The main function of the laser speed and length measuring instrument in this steel wire rope laser measurement and cutting machine is to measure the length of the steel wire rope 20. Specifically, it uses laser technology to accurately measure the displacement distance of the steel wire rope 20, that is, the length of the steel wire rope 20. When the steel wire rope 20 passes through the laser speed and length measuring instrument, the instrument will detect and record the moving distance (i.e., length) of the steel wire rope 20 in real time. Once this length reaches the preset target length value, the laser speed and length measuring instrument will transmit this information as a trigger signal to the controller. After receiving this signal, the controller will immediately start the rotation of the cutter head 73 in the cutting mechanism 7 so that it coincides with the fixed cutter seat 71 to form sufficient shearing force to cut the steel wire rope 20. In this way, the laser speed and length measuring instrument ensures that each cut steel wire rope 20 can reach the preset accurate length, thus meeting the length requirements in the production or processing process. After completing one cut, the cutter head 73 will reset and wait for the next cutting action, while the steel wire rope 20 continues to move forward until it reaches the preset length again, and so on in a cycle.

[0050] The laser speed and length measuring instrument has high precision, and its measurement ability can meet the requirement of accurately controlling the length tolerance within 6 mm when cutting a 12-meter-long steel wire rope 20. This high-precision characteristic ensures that each cutting operation can achieve extremely high accuracy, thus meeting the fine control requirements for the length of the steel wire rope 20 in the production or processing process.

[0051] As Figure 3 、 Figure 6 and Figure 7As shown in the figure, the rotary cutting mechanism 7 includes a fixed tool holder 71 and a rotating tool head 73. One end of the tool head 73 is rotatably connected to the frame 1, and the other end rotates around the rotating shaft to approach or move away from the tool holder 71. The surfaces of the tool holder 71 and the tool head 73 corresponding to each other are shear surfaces. A first blade 72 is provided at the shear surface of the tool holder 71, and a second blade 74 is provided at the shear surface of the tool head 73. When the tool head 73 rotates to coincide with the tool holder 71, a shearing force sufficient to cut the steel wire rope 20 is formed between the first blade 72 and the second blade 74. In addition, a groove 711 is formed on the upper surface of the tool holder 71 along the path where the steel wire rope 20 passes through. The lower half of the steel wire rope 20 can be embedded in the groove 711. In this way, when shearing the steel wire rope 20, the lateral movement of the steel wire rope 20 can be avoided, and the shearing accuracy and the flatness of the cut can be improved.

[0052] In the traditional method, the driving of the tool head 73 usually adopts a simple structure of directly matching a motor with a speed reducer. Although this design is easy to implement, due to the large diameter of the speed reducer, it is difficult to reduce the distance between the tool head 73 (specifically, the second blade 74 thereon) and the rotating shaft. This relatively large distance directly leads to an increase in torque, and further requires a motor with a higher power to be selected to meet the cutting requirements, increasing energy consumption and equipment costs.

[0053] However, in this case, a more efficient and compact driving mechanism is adopted. Specifically, the rotation of the tool head 73 is achieved by the cooperation of a second motor 75 and a 4:1 gear transmission group 76. The 4:1 gear transmission ratio can shorten the physical distance between the tool head 73 (specifically, the second blade 74 thereon) and the rotating shaft while realizing power transmission. The shortening of this distance directly leads to a reduction in the required torque, because the torque is proportional to the perpendicular distance (i.e., the force arm) from the line of action of the force to the rotating shaft. Therefore, when cutting the steel wire rope 20, the torque that the tool head 73 needs to overcome is significantly reduced, thus reducing the burden on the motor, enabling a smaller-power motor to meet the cutting requirements, improving the overall energy efficiency and reducing equipment costs.

[0054] The second pressing mechanism 8 is located above the tool holder 71. Specifically, as Figure 3 shown, it includes a pressing block 81 located above the tool holder 71 and a second cylinder 82. The piston rod of the second cylinder 82 drives the pressing block 81 to move up and down to press or release the steel wire rope 20 on the tool holder 71. During the shearing process, the pressing block 81 can continuously press the steel wire rope 20 on the tool holder 71 to prevent the steel wire rope 20 from shifting and affecting the shearing accuracy.

[0055] Due to its relatively large gravity, when the wire rope 20 coil is conveyed through the material roller 21 of the feeding mechanism 2, if the material roller 21 rotates at high speed with the heavy coil, it will be difficult to brake quickly due to the huge inertia, which will lead to the accumulation and chaos of the wire rope 20 at the discharging end, not only affecting the production efficiency but also potentially causing safety hazards. Therefore, the present solution also provides a deceleration and buffering mechanism 10. As Figure 2 and Figure 8 shown, the deceleration and buffering mechanism 10 includes a swing arm 101 and a buffer wheel 102 installed at the free end of the swing arm 101. The swing arm is connected to the frame 1 through a rotating seat 103 at the rotating end. The buffer wheel 102 is kept in moderate contact with the edge of the material roller 21 of the feeding mechanism 2. When the downstream equipment stops working due to reasons or the feeding speed needs to be reduced, the buffer wheel 102 gradually converts the kinetic energy of the material roller 21 into heat energy or other forms of energy dissipation by using the frictional resistance between it and the edge of the material roller 21, thereby effectively reducing the rotation speed of the material roller 21 until it finally stops smoothly. During this process, the swing arm 101 can absorb part of the impact, further reducing the vibration and impact load during braking and protecting the stability of the entire feeding system.

[0056] The threading path of the wire rope 20 is as follows: As Figure 1 and Figure 2 shown, one end of the wire rope 20 is released from the feeding mechanism 2, passes through the guiding hole of the guiding mechanism 3, then passes through between the pressing wheel 42 and the pressing column 43 of the first pressing mechanism, continues to pass through the first balancing mechanism 9, the moving mechanism 5, the second balancing mechanism 9, and then extends towards the tool holder 71 of the rotary cutting mechanism 7 and is pressed by the second pressing mechanism 8.

[0057] After the wire rope 20 is threaded, the first motor 52 of the moving mechanism 5 is started, driving the driving wheel 51 to rotate and drive the wire rope 20 to move. When the laser measuring mechanism 6 detects that the wire rope 20 reaches the preset length, it timely feeds back the information to the controller, and the controller controls the tool head 73 to perform a rotary cutting action. After one cutting is completed, the tool head 73 resets and waits for the next cutting action.

[0058] To further illustrate the embodiments, the present utility model provides drawings. These drawings are a part of the disclosure of the present utility model, which are mainly used to illustrate the embodiments and can be combined with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these contents, those of ordinary skill in the art should be able to understand other possible implementation manners and the advantages of the present utility model. The components in the drawings are not drawn to scale, and similar component symbols are usually used to represent similar components.

[0059] Meanwhile, the front, rear, left, right and other directions involved in this embodiment are only for reference of a direction and do not represent the directions in actual use. In addition, the terms "first", "second", and "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0060] The above are only the preferred embodiments of the present utility model and do not limit the design of this case. All equivalent changes made according to the key design of this case fall within the protection scope of this case.

Claims

1. A wire rope laser measurement rotary cutting machine, characterized in that: It includes a frame. One end of the frame is the feeding end, and the other end is the receiving end. On the frame, there are successively arranged a feeding mechanism, a first pressing mechanism, a moving mechanism, a laser measuring mechanism, a second pressing mechanism, and a rotary cutting mechanism from the feeding end to the receiving end; it also includes a controller, which is electrically connected to the moving mechanism, the laser measuring mechanism, and the rotary cutting mechanism for signal transmission; The steel wire rope on the feeding mechanism extends from the feeding end to the receiving end of the frame; the first pressing mechanism and the second pressing mechanism are used to press the steel wire rope, and the moving mechanism between them is used to control the movement or stop of the steel wire rope; the laser measuring mechanism is used to measure the length of the steel wire rope; the rotary cutting mechanism includes a fixed tool holder and a rotating tool head. The corresponding surfaces of the two are the shearing surfaces. The second pressing mechanism is located above the tool holder and is used to press the steel wire rope onto the tool holder. The tool head rotates to coincide with the tool holder to form a shearing force to cut off the steel wire rope; After the laser measuring mechanism detects that the steel wire rope reaches the preset length, it transmits the information to the controller. The controller controls the tool head to perform a rotary cutting action. After one cutting is completed, the tool head resets and waits for the next cutting action.

2. The wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: The moving mechanism includes a driving wheel and a driven wheel. The driving wheel is arranged on the frame and is driven by a first motor to rotate. The driven wheel is located above the driving wheel. Their axes are parallel to each other and perpendicular to the moving direction of the steel wire rope. The driven wheel is driven by a first cylinder to move up and down to approach or move away from the driving wheel.

3. A wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: The tool head is connected to a driving mechanism, and the driving mechanism includes a motor and a set of 4:1 gear transmission groups.

4. The wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: The second pressing mechanism includes a pressing block located above the tool holder and a second cylinder. The piston rod of the second cylinder drives the pressing block to move up and down to press or loosen the steel wire rope on the tool holder.

5. The wire rope laser measurement and rotary cutting machine according to claim 1, wherein: A groove is opened on the upper surface of the tool holder along the path where the steel wire rope passes through, and the lower half of the steel wire rope is embedded in the groove.

6. The wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: A guiding mechanism is arranged between the feeding mechanism and the first pressing mechanism. The guiding mechanism includes a vertical roller and a horizontal roller. The vertical roller and the horizontal roller are perpendicular and staggeredly arranged, and a wire guiding hole for the steel wire rope to pass through is formed between them.

7. The wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: The feeding mechanism includes a material roller and two rollers. Among them, the material roller is for installing the coil of the steel wire rope, and the two rollers are spaced on the frame to form a track for the material roller to be carried. The two ends of the material roller are carried on the rollers of the two rollers. Under the action of an external force, the material roller rotates in place to release the steel wire rope on it.

8. The wire rope laser measuring and rotary cutting machine according to claim 7, characterized in that: A deceleration and buffering mechanism is also arranged at the feeding end of the frame. The deceleration and buffering mechanism includes a swing arm and a buffer wheel installed at the free end of the swing arm. The buffer wheel contacts the edge of the material roller of the feeding mechanism.

9. A wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: It also includes two balancing mechanisms. The two balancing mechanisms are respectively located upstream and downstream of the moving mechanism. Each balancing mechanism includes a balancing seat and two balancing wheels. The balancing seat is fixed on the frame, and the balancing wheels are rotatably arranged on the balancing seat. The axis of the balancing wheels is perpendicular to the moving direction of the steel wire rope. The two balancing wheels are arranged vertically, and there is a passage for the steel wire rope to pass through between the two balancing wheels.

10. A wire rope laser measurement and rotary cutting machine according to claim 1, characterized in that: The first pressing mechanism includes a pressing seat, a pressing wheel, a pressing column, and an elastic member. The pressing seat is fixed on the frame. The pressing wheel is rotatably arranged on the pressing seat. A pressing column is provided above the pressing wheel. The steel wire rope passes between the pressing wheel and the pressing column. Under the action of the elastic member, the pressing column presses the steel wire rope against the surface of the pressing wheel.